Data Scientist

Zoom

Deutschland

Hybrid

EUR 90.000 - 120.000

Vollzeit

Vor 11 Tagen

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Zusammenfassung

Zoom is seeking a Senior Data Scientist to lead the development of a scalable analytics engine that turns raw telemetry into actionable insights across a multi-product SaaS platform. You will own end-to-end ML workflows, from data exploration to deployment, monitoring, and incident response, delivering robust models such as PQL scoring and churn prediction.

Collaborating with Sales, Product, and Leadership, you’ll translate insights into business actions and advance a full-lifecycle analytics

Qualifikationen

  • 6+ years of experience in applied data science or product analytics.
  • Proficient in SQL and Python (Pandas, Scikit-learn, Statsmodels, PyTorch or TensorFlow).
  • Experience building, deploying, and monitoring ML models in production.
  • Strong foundations in statistics, causal inference, and experimentation design.
  • Experience with MLOps platforms and data quality/observability tools.
  • Familiarity with telemetry/event-level data for modeling user behavior.
  • Knowledge of LLMs or generative AI to automate insight generation.

Aufgaben

  • Design end-to-end ML models (PQL scoring, churn, expansion) for production with defined latency/accuracy SLAs.
  • Build and maintain MLOps pipelines for dataset versioning, drift monitoring, retraining, model registry.
  • Collaborate with Product and Data Eng to define telemetry schemas, data contracts and quality validation.
  • Own model observability with dashboards/alerts for performance, drift and data anomalies; lead incident response.
  • Standardise analytics by developing reusable dbt data models and managing the experimentation lifecycle.

Kenntnisse

SQL
Python
ML in production
Statistics
Experiment design
MLOps
Data quality
Observability
Generative AI
dbt

Tools

MLflow
SageMaker
Vertex AI
Kubeflow
Great Expectations
Soda
Monte Carlo
dbt

Jobbeschreibung

What You Can Expect

Lead the development of a system converting raw telemetry into actionable insights using automation and scalable MLOps principles within a multi-product SaaS environment. Responsibilities include data exploration, model development, deployment, production monitoring, and incident response.

The role focuses on scaling predictive analytics for PQL scoring, expansion modeling, and churn prediction. Collaborate with teams to translate insights into impactful business actions for Sales, Product, and Leadership stakeholders. Deliver a full-lifecycle solution that moves beyond ad hoc analyses to create a robust, production-grade intelligence engine supporting strategic decision-making across the organization.

About the Team

We build data products that power revenue decisions across a multi-product SaaS platform. Our team partners closely with Sales, Product, and Engineering to turn telemetry into action.

Responsibilities
  • Designing and deploying end-to-end ML models — including PQL scoring, churn prediction, and expansion modeling — into production environments with defined latency and accuracy SLAs.
  • Building and maintaining MLOps pipelines covering dataset versioning, feature drift monitoring, automated retraining, and model registry management.
  • Collaborating with Product and Data Engineering teams to establish telemetry schemas, data contracts, and quality validation frameworks, ensuring models train and score using dependable data.
  • Owning model observability by creating dashboards and alerts for performance degradation, prediction drift, and data anomalies — and leading incident response when issues arise.
  • Standardising analytics frameworks by developing reusable dbt data models and owning the full experimentation lifecycle, from A/B test design to ship/no-ship recommendations.
What We’re Looking For
  • Demonstrate 6+ years of experience in applied data science or product analytics, or equivalent practical experience.
  • Apply advanced SQL and Python (Pandas, Scikit-learn, Statsmodels, PyTorch or TensorFlow) to solve complex analytical problems.
  • Build, deploy, and monitor ML models in production environments with a focus on reliability and performance.
  • Apply strong foundations in statistics, causal inference, and experimentation design to business problems.Work with telemetry and event-level data to model user behaviour and product engagement.
  • Use MLOps platforms such as MLflow, SageMaker, Vertex AI, or Kubeflow to manage model lifecycles.
  • Apply data quality and observability tools (e.g. Great Expectations, Soda, Monte Carlo) to upstream data pipelines.
  • Leverage LLMs or generative AI techniques to automate insight generation from telemetry data.
Ways of Working

Our structured hybrid approach is centered around our offices and remote work environments. The work style of each role, Hybrid, Remote, or In-Person is indicated in the job description/posting.

Benefits

As part of our award-winning workplace culture and commitment to delivering happiness, our benefits program offers a variety of perks, benefits, and options to help employees maintain their physical, mental, emotional, and financial health; support work-life balance; and contribute to their community in meaningful ways. Click Learnfor more information.

About Us

Zoomies help people stay connected so they can get more done together. We set out to build the best collaboration platform for the enterprise, and today help people communicate better with products like Zoom Contact Center, Zoom Phone, Zoom Events, Zoom Apps, Zoom Rooms, and Zoom Webinars.

We’re problem-solvers, working at a fast pace to design solutions with our customers and users in mind. Find room to grow with opportunities to stretch your skills and advance your career in a collaborative, growth-focused environment.

Our Commitment

At Zoom, we believe great work happens when people feel supported and empowered. We’re committed to fair hiring practices that ensure every candidate is evaluated based on skills, experience, and potential. If you require an accommodation during the hiring process, let us know—we’re here to support you at every step.

If you need assistance navigating the interview process due to a medical disability, please submit an Accommodations Request Form and someone from our team will reach out soon. This form is solely for applicants who require an accommodation due to a qualifying medical disability. Non-accommodation-related requests, such as application follow-ups or technical issues, will not be addressed.

Our interviews are supported by BrightHire, a tool that helps us create a consistent and thoughtful interview experience and may include recordings. Please refer to our candidate privacy statement for more information of how we use your data.

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